Strong p–d
Orbital Hybridization in Atomically
Ordered Intermetallic Pd3Bi Metallene Enables Energy-Efficient
Simultaneous Electrosynthesis of a Nylon‑6 Precursor and Glycolic
Acid
posted on 2025-04-08, 14:05authored byYou Xu, Jiangwei Xie, Youwei Sheng, Hongjie Yu, Kai Deng, Ziqiang Wang, Jianguo Wang, Hongjing Wang, Liang Wang
Aqueous electro-reductive coupling of nitrogen oxides
and cyclohexanone
to produce cyclohexanone oxime (CYCO) has recently attracted much
interest, but it is greatly challenging due to its low yield and poor
energy efficiency. Herein, an intermetallic Pd3Bi metallene
(i-Pd3Biene) catalyst was developed to
drive the electrosynthesis of CYCO from nitrite and cyclohexanone
at an almost 100% yield and Faradaic efficiency (FE) of 46.09%. Moreover,
the i-Pd3Biene also performed well for
the electro-reforming of polyethylene terephthalate to synthesize
glycolic acid (GA, FE: 96.63%). Detailed mechanism studies demonstrated
that the interatomic strong p–d orbital hybridization evokes
electron transfer from Bi to Pd and leads to electron localization
on ordered Pd atoms, which shows positive effects on optimizing the
adsorption equilibrium of key intermediates and directionally switching
the reaction pathways to synthesize desired products. With such fundamental
understanding, the bifunctional i-Pd3Biene
is further employed to assemble an asymmetric coupled electrocatalysis
system, achieving simultaneous energy savings in electrosynthesis
of CYCO and GA.